Compensation of DC offset and scaling errors in voltage and current measurements of three-phase AC/DC converters

The dc offset and scaling errors in the voltage and current measurements cause the injection of undesired dc and unbalanced currents into the three-phase input currents and subsequently lead to voltage ripple at the dc output voltage of the ac/dc converter. This paper proposes a compensation scheme...

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Main Authors: Trinh, Quoc Nam, Wang, Peng, Tang, Yi, Koh, Leong Hai, Choo, Fook Hoong
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/139836
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1398362021-01-05T06:24:02Z Compensation of DC offset and scaling errors in voltage and current measurements of three-phase AC/DC converters Trinh, Quoc Nam Wang, Peng Tang, Yi Koh, Leong Hai Choo, Fook Hoong School of Electrical and Electronic Engineering Energy Research Institute @ NTU (ERI@N) Engineering::Electrical and electronic engineering DC Current Rejection Harmonic Compensation The dc offset and scaling errors in the voltage and current measurements cause the injection of undesired dc and unbalanced currents into the three-phase input currents and subsequently lead to voltage ripple at the dc output voltage of the ac/dc converter. This paper proposes a compensation scheme for current measurement error where the dc offset and scaling errors in the current measurement are estimated from the voltage ripple characteristics of the dc output voltage ripple combining with simple band-pass and low-pass filters. Meanwhile, the dc offset and scaling errors in the voltage measurement can be rejected by using an advanced current controller developed with a proportional resonant plus a repetitive controller designed in the synchronous (d-q) reference frame. The proposed control algorithm is able to effectively reject the impact of both voltage and current measurement error so that the three-phase input currents are regulated to be balanced and sinusoidal with ultralow dc current component. Meanwhile, the dc output voltage is also well regulated to be pure dc with a negligibly small voltage ripple. The proposed compensation method is developed without the need of extra hardware circuit, sensor, or precise information of system parameters so that it can be considered as more cost effective and robust solution. The effectiveness of the proposed solution is verified by experimental results. NRF (Natl Research Foundation, S’pore) 2020-05-22T03:42:08Z 2020-05-22T03:42:08Z 2017 Journal Article Trinh, Q. N., Wang, P., Tang, Y., Koh, L. H., & Choo, F. H. (2018). Compensation of DC offset and scaling errors in voltage and current measurements of three-phase AC/DC converters. IEEE Transactions on Power Electronics, 33(6), 5401-5414. doi:10.1109/TPEL.2017.2734809 0885-8993 https://hdl.handle.net/10356/139836 10.1109/TPEL.2017.2734809 2-s2.0-85028892575 6 33 5401 5414 en IEEE Transactions on Power Electronics © 2017 IEEE. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
DC Current Rejection
Harmonic Compensation
spellingShingle Engineering::Electrical and electronic engineering
DC Current Rejection
Harmonic Compensation
Trinh, Quoc Nam
Wang, Peng
Tang, Yi
Koh, Leong Hai
Choo, Fook Hoong
Compensation of DC offset and scaling errors in voltage and current measurements of three-phase AC/DC converters
description The dc offset and scaling errors in the voltage and current measurements cause the injection of undesired dc and unbalanced currents into the three-phase input currents and subsequently lead to voltage ripple at the dc output voltage of the ac/dc converter. This paper proposes a compensation scheme for current measurement error where the dc offset and scaling errors in the current measurement are estimated from the voltage ripple characteristics of the dc output voltage ripple combining with simple band-pass and low-pass filters. Meanwhile, the dc offset and scaling errors in the voltage measurement can be rejected by using an advanced current controller developed with a proportional resonant plus a repetitive controller designed in the synchronous (d-q) reference frame. The proposed control algorithm is able to effectively reject the impact of both voltage and current measurement error so that the three-phase input currents are regulated to be balanced and sinusoidal with ultralow dc current component. Meanwhile, the dc output voltage is also well regulated to be pure dc with a negligibly small voltage ripple. The proposed compensation method is developed without the need of extra hardware circuit, sensor, or precise information of system parameters so that it can be considered as more cost effective and robust solution. The effectiveness of the proposed solution is verified by experimental results.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Trinh, Quoc Nam
Wang, Peng
Tang, Yi
Koh, Leong Hai
Choo, Fook Hoong
format Article
author Trinh, Quoc Nam
Wang, Peng
Tang, Yi
Koh, Leong Hai
Choo, Fook Hoong
author_sort Trinh, Quoc Nam
title Compensation of DC offset and scaling errors in voltage and current measurements of three-phase AC/DC converters
title_short Compensation of DC offset and scaling errors in voltage and current measurements of three-phase AC/DC converters
title_full Compensation of DC offset and scaling errors in voltage and current measurements of three-phase AC/DC converters
title_fullStr Compensation of DC offset and scaling errors in voltage and current measurements of three-phase AC/DC converters
title_full_unstemmed Compensation of DC offset and scaling errors in voltage and current measurements of three-phase AC/DC converters
title_sort compensation of dc offset and scaling errors in voltage and current measurements of three-phase ac/dc converters
publishDate 2020
url https://hdl.handle.net/10356/139836
_version_ 1688665444454498304